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Updated: Oct 9, 2025

siRNA Screening to Identify Ubiquitin and Ubiquitin-like System Regulators of Biological Pathways in Cultured Mammalian Cells
Published on: May 24, 2014
Genome-Wide RNAi Screening Identifies Novel Pathways/Genes Involved in Oxidative Stress and Repurposable Drugs to
Javier Checa1, Itziar Martínez-González1,2, Maria Maqueda3
1Immune-Inflammatory Processes and Gene Therapeutics Group, Genes, Disease and Therapy Program, Institut d'Investigació Biomèdica de Bellvitge-IDIBELL, L'Hospitalet de Llobregat, 08908 Barcelona, Spain.
Abstract:
Recurrent infection-inflammation cycles in cystic fibrosis (CF) patients generate a highly oxidative environment, leading to progressive destruction of the airway epithelia. The identification of novel modifier genes involved in oxidative stress susceptibility in the CF airways might contribute to devise new therapeutic approaches. We performed an unbiased genome-wide RNAi screen using a randomized siRNA library to identify oxidative stress modulators in CF airway epithelial cells. We monitored changes in cell viability after a lethal dose of hydrogen peroxide. Local similarity and protein-protein interaction network analyses uncovered siRNA target genes/pathways involved in oxidative stress. Further mining against public drug databases allowed identifying and validating commercially available drugs conferring oxidative stress resistance. Accordingly, a catalog of 167 siRNAs able to confer oxidative stress resistance in CF submucosal gland cells targeted 444 host genes and multiple circuitries involved in oxidative stress. The most significant processes were related to alternative splicing and cell communication, motility, and remodeling (impacting cilia structure/function, and cell guidance complexes). Other relevant pathways included DNA repair and PI3K/AKT/mTOR signaling. The mTOR inhibitor everolimus, the α1-adrenergic receptor antagonist doxazosin, and the Syk inhibitor fostamatinib significantly increased the viability of CF submucosal gland cells under strong oxidative stress pressure. Thus, novel therapeutic strategies to preserve airway cell integrity from the harsh oxidative milieu of CF airways could stem from a deep understanding of the complex consequences of oxidative stress at the molecular level, followed by a rational repurposing of existing "protective" drugs. This approach could also prove useful to other respiratory pathologies.
Insights
Researchers identified genes and pathways that protect cystic fibrosis (CF) airway cells from oxidative stress. This discovery could lead to new drug repurposing strategies to preserve airway integrity in CF and other respiratory diseases.
Area of Science:
- Cell Biology
- Genetics
- Pharmacology
Background:
- Cystic Fibrosis (CF) involves recurrent infection-inflammation cycles, creating a highly oxidative environment that progressively destroys airway epithelia.
- Identifying genes that modify oxidative stress susceptibility in CF airways is crucial for developing novel therapeutic strategies.
Purpose of the Study:
- To conduct an unbiased genome-wide RNAi screen to identify oxidative stress modulators in CF airway epithelial cells.
- To uncover genes and pathways involved in oxidative stress and identify existing drugs that confer oxidative stress resistance.
Main Methods:
- Genome-wide RNAi screen using a randomized siRNA library in CF airway epithelial cells.
- Monitoring cell viability after exposure to hydrogen peroxide.
- Network analysis of siRNA targets and mining public drug databases for potential therapeutics.
Main Results:
- A catalog of 167 siRNAs targeting 444 host genes conferred oxidative stress resistance in CF submucosal gland cells.
- Key affected pathways included alternative splicing, cell communication, motility, remodeling, DNA repair, and PI3K/AKT/mTOR signaling.
- Everolimus (mTOR inhibitor), doxazosin (α1-adrenergic receptor antagonist), and fostamatinib (Syk inhibitor) significantly enhanced CF cell viability under oxidative stress.
Conclusions:
- Understanding the molecular consequences of oxidative stress in CF is key to developing new therapies.
- Repurposing existing drugs like everolimus, doxazosin, and fostamatinib offers a promising strategy to preserve airway cell integrity.
- This approach may also benefit other respiratory pathologies characterized by oxidative stress.
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